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AUTOMATION 60-th ANNIVERSARY OF JSC “SOYUZTSVETMETAVTOMATIKA”
Название Industrial in-line automatic granulometer PIK-074P as the basis of automatic control and quality materials grinding control systems
DOI 10.17580/tsm.2015.09.07
Автор Topchaev V. P., Topchaev A. V., Lapidus M. V.
Информация об авторе

JSC “Soyuztsvetmetavtomatika”, Moscow, Russia:

V. P. Topchaev, Chief Executive Officer
A. V. Topchaev, Head of Laboratory
M. V. Lapidus, Leading Engineer, e-mail: 42@scma.ru

Реферат

The paper is a brief analysis of the known controlling methods ground product’s grain fineness to justify the possibility of their use for the automatic controlgraded directly in the flow of particulate material without sampling. The main requirements to the choice of control method of a product size after grinding and separating units are presented, the principle of the Rosen-Ramlera equation is proposed as a method of automatic control-graded, the results of practical verification of the measurement method are provided, proving a high degree of dependence of a given class size content in the flow of the pulp from the average size to medium-large particles in the flow. Implementation of the particulate size measuring method in stock flow is made in the form of a micrometer probe comprising a movable measuring rod and a stationary thrust bearing, placed directly into the flow (pulp), which measures with a predetermined frequency the size of passing through the probe random medium-coarse particles of pulp, with the transformation of measurements into electrical signal followed by a signal controller for a given algorithm, with the issuance on a scoreboard continuous values of the content of a given class product size, and the signal into grinding control system. Issues of improving the accuracy of measurements particle size distribution with the density and temperature of the flow of ground products are handled by the authors. The data to ensure high reliability of the measurement system, the features of the application of the granulometer PIK 074P in various industries for the automatic control and management-graded process of crushing and separation, as well as data on implementation granulometers PIC 074 series at the concentrators and metallurgical plants is given.

Ключевые слова Particulate size control, automation, grain fineness, grinding, stock flow, methods of measurement, micrometer probe, controller, device design, the introduction of facilities
Библиографический список

1. Avtomatizatsiya upravleniya obogatitelnymi fabrikami (Automation of concentration plant control). Under the general editorship of B. D. Kosharskiy, A. Ya. Sitkovskiy. Moscow: Nedra, 1977. 527 p.
2. Tikhonov O. N. Avtomatizatsiya proizvodstvennykh protsessov na obogatitelnykh fabrikakh (Industrial process automation at concentration plants). Moscow : Nedra, 1985.
3. Olevskiy V. A. Razmolnoe oborudovanie obogatitelnykh fabrik (Grindability equipment of concentration plants). Moscow : Nedra, 1972.
4. Morozov V. V., Topchaev V. P., Ulitenko K. Ya., Ganbaatar Z., Delgerbat L. Razrabotka i primenenie avtomatizirovannykh sistem upravleniya protsessami obogashcheniya poleznykh iskopaemykh (Development and application of industrial systems of mineral concentration process control). Moscow : “Ore and Metals” Publishing House, 2013. 512 p.
5. Dukhin A. S., Goetz P. J., Xiaohua Fang, Somasundaran P. Monitoring nanoparticles in the presence of larger particles in liquids using acoustics and electron microscopy. Journal of Colloid and Interface Science. 2010. Vol. 342. pp. 18–25.
6. Little L., Becker M., Wiese J., Mainza A. N. Auto-SEM particle shape characterisation: Investigating fine grinding of UG2 ore. Minerals Engineering. 2015. DOI: http://dx.doi.org/10.1016/j.mineng.2015.03.021.
7. Le Roux J. D., Craig I. K. Reducing the number of size classes in a cumulative rates model used for process control of a grinding mill circuit. Powder Technology. 2013. Vol. 246. pp. 169–181.
8. Andreev S. E., Tovarov V. V., Perov V. A. Zakonomernosti izmelcheniya i ischisleniya kharakteristik granulometricheskogo sostava (Regularities of grinding and calculation of granulometric composition characteristics). Moscow : Metallurgizdat, 1959.
9. Barskiy L. A., Rubinshteyn Yu. B. Kiberneticheskie metody v obogashchenii poleznykh iskopaemykh (Cybernetic methods in mineral concentration). Moscow : Nedra, 1970. 312 p.
10. Granulometr “PIK-074P” (Granulometer “PIK-074P”). Available at: http://scma.ru/ru/products/2-24.html. (in Russian).
11. V. P. Topchaev, L. K. Zinina, A. V. Topchaev, M. V. Lapidus. Ustroystvo dlya avtomaticheskogo kontrolya granulometricheskogo sostava pulpy i rastvorov (Equipment for industrial control of granulometric composition of pulps and solutions). Patent RF, No. 2207542. Published : June 27, 2003.
12. A. K. Sobolev, A. M. Pankratov, M. V. Lapidus, A. V. Topchaev, V. P. Topchaev. Ustroystvo dlya avtomaticheskogo kontrolya granulometricheskogo sostava izmelchennykh promproduktov (Equipment for industrial control of granulometric composition of grinded industrial products). Utility model patent RF, No. 105740. Published : January 20, 2011.
13. Topchaev V. P., Topchaev A. V., Lapidus M. V. Novyy potochnyy granulometr PIK-074P dlya avtomaticheskogo kontrolya granulometricheskogo sostava pulpy (New assembly granulometer PIK-074P for automatic control of granulometric composition of pulp). Tsvetnye Metally = Non-ferrous metals. 2005. No. 10. pp. 25–27.
14. Topchaev V. P., Zinina L. K., Topchaev A. V., Lapidus M. V. Ustanovka avtomaticheskogo kontrolya granulometricheskogo sostava v potoke pulpy tipa “PIK-074” (Apparatus for industrial control of granulometric composition in the pulp flow “PIK-074”). Praktika priborostroeniya = Instrumentation technology practice. 2003. No. 3.
15. V. P. Topchaev, A. V. Topchaev, M. V. Lapidus. Sposob avtomaticheskogo kontrolya krupnosti chastits v potoke materiala (Method of automatic control of particle coarseness in material flow). Patent RF, No. 2401425. Published : October 10, 2010. Bulletin No. 28.

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